EP2271940A1 - Detection of head and neck cancer using hypermethylated gene detection - Google Patents
Detection of head and neck cancer using hypermethylated gene detectionInfo
- Publication number
- EP2271940A1 EP2271940A1 EP08873533A EP08873533A EP2271940A1 EP 2271940 A1 EP2271940 A1 EP 2271940A1 EP 08873533 A EP08873533 A EP 08873533A EP 08873533 A EP08873533 A EP 08873533A EP 2271940 A1 EP2271940 A1 EP 2271940A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- genes
- gene
- combination
- methylation
- hypermethylation
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
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- C12Q—MEASURING OR TESTING PROCESSES INVOLVING ENZYMES, NUCLEIC ACIDS OR MICROORGANISMS; COMPOSITIONS OR TEST PAPERS THEREFOR; PROCESSES OF PREPARING SUCH COMPOSITIONS; CONDITION-RESPONSIVE CONTROL IN MICROBIOLOGICAL OR ENZYMOLOGICAL PROCESSES
- C12Q2600/00—Oligonucleotides characterized by their use
- C12Q2600/118—Prognosis of disease development
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12Q—MEASURING OR TESTING PROCESSES INVOLVING ENZYMES, NUCLEIC ACIDS OR MICROORGANISMS; COMPOSITIONS OR TEST PAPERS THEREFOR; PROCESSES OF PREPARING SUCH COMPOSITIONS; CONDITION-RESPONSIVE CONTROL IN MICROBIOLOGICAL OR ENZYMOLOGICAL PROCESSES
- C12Q2600/00—Oligonucleotides characterized by their use
- C12Q2600/154—Methylation markers
Definitions
- the invention relates generally to methods and kits useful for detecting, diagnosing or evaluating cancer and more specifically to methods and kits for detecting, diagnosing or evaluating head and neck squamous cell carcinoma (HNSCC) by detecting methylation changes in the saliva and serum of subjects with a profile of gene markers.
- HNSCC head and neck squamous cell carcinoma
- HNSCC head and neck squamous cell carcinoma
- Body fluids can potentially carry whole cells, as well as protein, DNA, and RNA species that allow for detection of cellular alterations related to cancer.
- relevant body fluids used for detection include: analysis of sputum for lung cancer diagnosis; urine for urologic tumors; saliva for HNSCC; breast fluid; as well as serum or plasma for almost all types of cancer.
- the feasibility of cancer detection in body fluids also opens a new potential for surveillance after treatment. Molecular detection could be useful to predict tumor recurrence before clinical symptoms or appearance of lesions having the potential to change treatment and follow-up approach.
- An epigenetic pathway of transcriptional inactivation for many tumor suppressor genes includes CpG island hypermethylation within promoter regions. This pathway has been identified in many different cancers and recent studies have focused on promoter hypermethylation in HNSCC. Promoter hypermethylation in tissue samples can be detected by using quantitative methylation-specific PCR (Q-MSP); this real-time PCR methodology allows a more objective, robust, and rapid assessment of promoter methylation status. The ability to quantify the methylation provides the potential for determination of a threshold value of methylation to improve sensitivity and specificity in detection of tumor-specific signal.
- Q-MSP quantitative methylation-specific PCR
- head and neck cancer is a disease that is often detected late, so that it requires morbid treatment or results in death.
- the present invention is based on the discovery of a panel of markers that provide detect epigenetic changes associated with HNSCC in salivary rinses and serum from patients with HNSCC. Further this panel of promoter hypermethylation markers can be used to anticipate the diagnosis of tumor recurrence by detecting the epigenetic changes associated with HNSCC.
- the present invention relates to methods and kits used for diagnosing, or evaluating a subject having or at risk of developing head and neck cancer by determining the methylation state of a gene or the regulatory region of at least one gene in a nucleic acid sample from the subject, and wherein at least one gene or regulatory region is hypermethylated as compared to the same region in a corresponding normal cell.
- the invention provides a method for diagnosing a subject having or at risk of developing head and neck cancer.
- the method includes determining the methylation state of a gene or the regulatory region of at least two genes in a nucleic acid sample from the subject, wherein the at least two genes or regulatory regions are hypermethylated as compared to the same regions in a corresponding normal cell; wherein the regulatory regions of the at least one of the two genes is selected from DCC, DAPK, TIMP3, ESR, CCNAl, CCND2, MINTl, MINT31, CDHl, AIMl, MGMT, pl6, PGP9.5, RARB, HICl, RASSFlA, CALCA, TGFBR2, S100A2, RIZl, RBM6, KIFl, EDNRB and a combination thereof.
- the head and neck cancer is head and neck squamous cell carcinoma (HNSCC).
- HNSCC head and neck squamous cell carcinoma
- Illustrative biological samples include saliva and serum sample.
- the combination of genes includes at least one gene selected from CCNAl, TIMP3, DCC, DAPK, MGMT, MINT31, pi 6, PGP9.5, MINTl, CDHl, AIMl, ESR, CCND2 and a combination thereof.
- this combination of genes is used when the sample is a saliva sample.
- the combination of genes includes a panel from about 2 to 25 genes or regulatory regions thereof.
- the combination of genes includes at least one gene selected from HICl, PGP9.5, CDHl, CCND2, TIMP3, TGFBR2, AIMl, ESR, CCNAl, DCC, MINT31, pi 6, RARB and a combination thereof.
- this combination of genes is used when the sample is a serum sample.
- the combination of genes includes a panel from about 2 to 25 genes or regulatory regions thereof.
- the hypermethylation is determined using quantitative methylation-specific PCR (Q-MSP).
- the hypermethylation is detected by detecting decreased expression of the gene.
- decreased expression is detected by reverse transcription-polymerase chain reaction (RT-PCR).
- the invention provides a method of determining the prognosis of a subject having a head and neck cancer.
- the method includes determining the methylation state of a gene or the regulatory region of at least two genes in a nucleic acid sample from the subject, wherein the at least two genes or regulatory regions are hypermethylated as compared to the same regions in a corresponding normal cell; wherein the regulatory regions of at least one of the two genes is selected from DCC, DAPK, TIMP3, ESR, CCNAl, CCND2, MINTl, MINT31, CDHl, AIMl 5 MGMT, pi 6, PGP9.5, RARB, HICl, RASSFlA, CALCA, TGFBR2, S100A2, RIZl, RBM6, KIFl, and EDNRB and a combination thereof; and wherein the hypermethylation of the region as compared to the same region in a corresponding normal cell is indicative of a poor prognosis.
- the invention provides a method for determining whether a subject is responsive to a particular therapeutic regimen including determining the methylation state of a gene or the regulatory region of at least two genes, in a nucleic acid sample from the subject, wherein the at least two genes or regulatory regions are hypermethylated as compared to the same regions in a corresponding normal cell; wherein the regulatory regions of at least one of the two genes is selected from DCC, DAPK, TIMP3, ESR, CCNAl, CCND2, MINTl, MINT31, CDHl, AIMl, MGMT, pi 6, PGP9.5, RARB, HICl, RASSFlA, CALCA, TGFBR2, S100A2, RIZl, RBM6, KIFl, EDNRB and a combination thereof; and wherein the hypermethylation of the region as compared to the same region in a corresponding normal cell is indicative of a subject who may be responsive to the therapeutic regimen.
- the therapeutic regimen is administration of a chemotherapeutic agent such as methotrexate, cisplatin/carboplatin, canbusil, dactinomicin, taxol (paclitaxol), a vinca alkaloid, a mitomycin-type antibiotic, a bleomycin-type antibiotic, antifolate, colchicine, demecoline, etoposide, taxane, anthracycline antibiotic, doxorubicin, daunorubicin, carminomycin, epirubicin, idarubicin, mithoxanthrone, 4-dimethoxy-
- a chemotherapeutic agent such as methotrexate, cisplatin/carboplatin, canbusil, dactinomicin, taxol (paclitaxol), a vinca alkaloid, a mitomycin-type antibiotic, a bleomycin-type antibiotic, antifolate, colchicine, demeco
- 'daunorubicin 13-deoxydaunorubicin, adriamycin-14-benzoate, adriamycin-14-octanoate, adriamycin-14-naphthaleneacetate, amsacrine, carmustine, cyclophosphamide, cytarabine, etoposide, lovastatin, melphalan, topetecan, oxalaplatin, chlorambucil, methtrexate, lomustine, thioguanine, asparaginase, vinblastine, vindesine, tamoxifen, and mechlorethamine.
- the therapeutic regimen is administration of a demethylating agent such as 5-azacytidine or 5-aza-2-deoxycytidine or zebularine.
- a demethylating agent such as 5-azacytidine or 5-aza-2-deoxycytidine or zebularine.
- the method of the invention also includes a combination therapeutic approach using a chemotherapeutic agent in combination with a demethylating agent, in any sequence of administration.
- the invention provides a kit including an agent that provides a determination of the methylation state of a gene or the regulatory region of at least two genes, and a panel of at least one gene selected from DCC, DAPK, TIMP3, ESR, CCNAl, CCND2, MINTl, MINT31, CDHl, AIMl, MGMT, pl6, PGP9.5, RARB, HICl, RASSFlA, CALCA, TGFBR2, S100A2, RIZl, RBM6, KIFl, EDNRB and a combination thereof.
- the combination of genes includes at least CCNAl, TIMP3, DCC, DAPK, MGMT, MINT31, pi 6, PGP9.5, MINTl, CDHl, AIMl, ESR, CCND2 and a combination thereof.
- the invention provides a kit including an agent that provides a determination of the methylation state of a gene or the regulatory region of at least two genes; and a panel of two or more genes selected from the group consisting of DCC, DAPK, TIMP3, ESR 5 CCNAl, CCND2, MINTl, MINT31, CDHl, AIMl, MGMT, pl6, PGP9.5, RARB, HICl, RASSFlA, CALCA, TGFBR2, S100A2, RIZl, RBM6, KIFl, EDNRB and a combination thereof.
- the combination of genes includes at least HICl, PGP9.5, CDHl, CCND2, TIMP3, TGFBR2, AIMl, ESR, CCNAl, DCC, MINT31, p 16, RARB and a combination thereof.
- Figure 1 is a table which shows the primers and probes designed to specifically amplify the bisulfite-converted DNA for the ACTB gene (SEQ ID NO'S 1 - 3) and all genes of interest (SEQ ID NO'S 4 - 66).
- Figure 2 is a table which shows all the possible combinations and results of the genes tested in saliva.
- Figure 3 is a table which shows all the possible combinations and results of the genes tested in serum.
- Figure 4 is a graph which shows the operating characteristic curves for selected panels for saliva samples single point represented the performance of the panel with a positive panel being defined as at least one gene of the panel presented methylation.
- Figure 5 is a graph which shows the operating characteristic curves for selected panels for serum samples single point represented the performance of the panel with a positive panel being defined as at least one gene of the panel presented methylation.
- Figures 6A- 6E are graphs which show patterns of hypermethylation in DNA tumor (case) and DNA salivary rinses (control) for the selected genes.
- Figure 6 A shows the pattern for the gene MINT31
- Figure 6B shows the pattern for the gene DCC
- Figure 6C shows the pattern for the gene CALCA
- Figure 6D shows the pattern for the gene CCND2
- Figure 6E shows the pattern for the gene RBM6.
- Figures 7A and 7B are graphs which show a plot of specificity versus sensitivity for head and neck cancer detection on body fluids with Figure 7A showing the detection in salivary rinses and Figure 7B showing the detection in serum.
- Figure 8 are graphs which show the compartment-specific methylation considering methylation patterns on tumor, saliva from controls, and serum from controls for selected genes.
- the X axis represents the proportion of methylated cases/tested cases for each sample type.
- the Y axis represents the quantity of hypermethylation gene of mterest/ACTB x 100.
- Figure 9 is a table which demonstrates the analyses based on samples from saliva cases vs. saliva control. The results included the frequency distributions AUC, sensitivity and specificity for each gene and are summarized in the table
- Figure 10 is a table which shows the detection of promoter hypermethylation patterns on saliva pre-treatment (full panel) according to clinical characteristics.
- Figure 11 is a graph which shows the local control rates according to the hypermethylation pattern on saliva pre-treatment (full panel).
- Figure 12 is a graph which shows the overall survival according to the hypermethylation pattern on saliva pre-treatment (full panel).
- Figure 13 is a table which shows the local control and overall survival rates according to the clinical variables tested in Example 2.
- Figure 14 is a table which shows the local control and overall survival rates according to the promoter hypermethylation pattern on saliva pre-treatment in Example 2
- Figure 15 is a table which shows the multivariate analysis for local control and overall survival in Example 2.
- Figure 16 is a graph which shows the quantity of hypermethylation of
- Figure 17 is a graph which shows the quantity of hypermethylation of
- the present invention is based on compositions and methods for detecting a cellular proliferative disorder in a subject.
- the method includes obtaining a nucleic acid- containing sample from the subject; contacting the sample with an agent that provides a determination of the methylation state of at least two genes or associated regulatory region of the gene; identifying aberrant methylation of the regions of the genes or regulatory regions, wherein aberrant methylation is identified as being different when compared to the same regions of the gene or associated regulatory region in a subject not having a cellular proliferative disorder.
- the method of the invention is also useful for prognostic analyses.
- Examples of a cellular proliferative disorder includes non-small cell lung cancer, head and neck carcinoma, lymphoma, melanoma, myeloma, neuroblastoma, glioblastoma, ovarian cancer, pancreatic cancer, prostate cancer, urothelial cancer, breast cancer, colon cancer, thyroid cancer, testicular cancer, tumors of the oral cavity, larynx, pharynx, neck, skull base, salivary glands, and premalignant conditions of the upper aerodigestive tract.
- the cellular proliferative disorder is head and neck squamous cell carcinoma.
- the gene or regulatory region is two or more genes including those listed here and/or additional genes (the "target genes").
- at least one gene or regulatory region thereof is selected from DCC, DAPK, TIMP3, ESR, CCNAl, CCND2, MINTl, MINT31, CDHl, AIMl, MGMT, pl6, PGP9.5, RARB, HICl, RASSFlA, CALCA, TGFBR2, S100A2, RIZl, RBM6, KIFl and EDNRB.
- hypermethylation may occur in the gene or regulatory region thereof.
- the hypermethylation occurs within the regulatory region of the genes identified herein, in particular embodiments, the hypermethylation is in the promoter sequence of the regulatory region. More particularly, the hypermethylation may be in a CpG dinucleotide motif of the promoter.
- the method includes contacting a nucleic acid-containing sample from cells of the subject with an agent that provides a determination of the methylation state of at least one regulatory region of a gene, wherein the at least one regulatory region is hypermethylated in a cell undergoing unregulated cell growth as compared to a corresponding normal cell; and identifying hypermethylation of the regulatory region in the nucleic acid-containing sample, as compared to the same region of the at least one regulatory region in a subject not having the proliferative disorder, wherein hypermethylation is indicative of a subject having or at risk of developing the proliferative disorder.
- the term "cell proliferative disorder" as used herein refers to malignant as well as non-malignant cell populations which often differ from the surrounding tissue both morphologically and genotypically.
- the cell proliferative disorder is a cancer.
- the cancer may be a carcinoma or a sarcoma.
- a cancer can include, but is not limited to, head cancer, neck cancer, head and neck cancer, lung cancer, breast cancer, prostate cancer, colorectal cancer, esophageal cancer, stomach cancer, leukemia/lymphoma, uterine cancer, skin cancer, endocrine cancer, urinary cancer, pancreatic cancer, gastrointestinal cancer, ovarian cancer, cervical cancer, and adenomas.
- the cancer is head and neck cancer.
- the head and neck cancer is head and neck squamous cell carcinoma.
- the nucleic acid-containing sample for use in the invention methods may be virtually any biological sample that contains nucleic acids from the subject.
- the biological sample can be a tissue sample which contains 1 to 10,000,000, 1000 to 10,000,000, or 1,000,000 to 10,000,000 somatic cells. However, it is possible to obtain samples that contain smaller numbers of cells, even a single cell in embodiments that utilize an amplification protocol such as PCR.
- the sample need not contain any intact cells, so long as it contains sufficient material (e.g., protein or genetic material, such as RNA or DNA) to assess methylation status or gene expression levels.
- the nucleic acid- containing sample is obtained from cells are from a sample selected from the group consisting of a tissue sample, a frozen tissue sample, a biopsy specimen, a surgical specimen, a cytological specimen, whole blood, bone marrow, cerebral spinal fluid, peritoneal fluid, pleural fluid, lymph fluid, serum, mucus, plasma, urine, chyle, stool, ejaculate, sputum, nipple aspirate and saliva.
- the sample is serum and saliva.
- a biological or tissue sample can be drawn from any tissue that is susceptible to cancer.
- the tissue may be obtained by surgery, biopsy, swab, stool, or other collection method.
- the biological sample for methods of the present invention can be, for example, a sample from colorectal tissue, or in certain embodiments, can be a blood sample, or a fraction of a blood sample such as a peripheral blood lymphocyte (PBL) fraction.
- PBL peripheral blood lymphocyte
- Methods for isolating PBLs from whole blood are well known in the art. An example of such a method is provided in the Example section herein.
- the subject is typically a human, but also can be any mammal, including, but not limited to, a dog, cat, rabbit, cow, rat, horse, pig, or monkey.
- Bisulfite ions for example, sodium bisulfite, convert non-methylated cytosine residues to bisulfite modified cytosine residues.
- the bisulfite ion treated gene sequence can be exposed to alkaline conditions, which convert bisulfite modified cytosine residues to uracil residues.
- Sodium bisulfite reacts readily with the 5,6-double bond of cytosine (but poorly with methylated cytosine) to form a sulfonated cytosine reaction intermediate that is susceptible to deamination, giving rise to a sulfonated uracil.
- the sulfonate group can be removed by exposure to alkaline conditions, resulting in the formation of uracil.
- the DNA can be amplified, for example, by PCR, and sequenced to determine whether CpG sites are methylated in the DNA of the sample.
- Uracil is recognized as a thymine by Taq polymerase and, upon PCR, the resultant product contains cytosine only at the position where 5- methylcytosine was present in the starting template DNA.
- the amount or distribution of uracil residues also can be detected by contacting the bisulfite ion treated target gene sequence, following exposure to alkaline conditions, with an oligonucleotide that selectively hybridizes to a nucleotide sequence of the target gene that either contains uracil residues or that lacks uracil residues, but not both, and detecting selective hybridization (or the absence thereof) of the oligonucleotide.
- the gene is contacted with hydrazine, which modifies iot methylated cytosine residues, then the hydrazine treated gene sequence is contacted with a reagent such as piperidine, which cleaves the nucleic acid molecule at hydrazine modified cytosine residues, thereby generating a product comprising fragments.
- a reagent such as piperidine
- piperidine which cleaves the nucleic acid molecule at hydrazine modified cytosine residues, thereby generating a product comprising fragments.
- Modified products can be detected directly, or after a further reaction which creates products which are easily distinguishable.
- Means which detect altered size and/or charge can be used to detect modified products, including but not limited to electrophoresis, chromatography, and mass spectrometry.
- Examples of such chemical reagents for selective modification include hydrazine and bisulfite ions.
- Hydrazine-modified DNA can be treated with piperidine to cleave it.
- Bisulfite ion-treated DNA can be treated with alkali.
- Other means which are reliant on specific sequences can be used, including but not limited to hybridization, amplification, sequencing, and ligase chain reaction. Combinations of such techniques can be used as is desired.
- methylation status may be assessed using real-time methylation specific PCR.
- the methylation level of the promoter region of one or more of the target genes can be determined by determining the amplification level of the promoter region of the target gene based on amplification-mediated displacement of one or more probes whose binding sites are located within the amplicon.
- real-time quantitative methylation specific PCR is based on the continuous monitoring of a progressive fluorogenic PCR by an optical system. Such PCR systems are well-known in the art and usually use two amplification primers and an additional amplicon-specific, fluorogenic hybridization probe that specifically binds to a site within the amplicon.
- the probe can include one or more fluorescence label moieties.
- the probe can be labeled with two fluorescent dyes: 1) a 6-carboxy-fluorescein (FAM), located at the 5 '-end, which serves as reporter, and 2) a 6-carboxy-tetramethyl-rhodamine (TAMRA), located at the 3 '-end, which serves as a quencher.
- FAM 6-carboxy-fluorescein
- TAMRA 6-carboxy-tetramethyl-rhodamine
- hypermethylation can be identified through nucleic acid sequencing after bisulfite treatment to determine whether a uracil or a cytosine is present at specific location within a gene or regulatory region. If uracil is present after bisulfite treatment, then the nucleotide was unmethylated. Hypermethylation is present when there is a measurable increase in methylation.
- the method for analyzing methylation of the target gene can include amplification using a primer pair specific for methylated residues within a the target gene.
- selective hybridization or binding of at least one of the primers is dependent on the methylation state of the target DNA sequence.
- the amplification reaction can be preceded by bisulfite treatment, and the primers can selectively hybridize to target sequences in a manner that is dependent on bisulfite treatment.
- one primer can selectively bind to a target sequence only when one or more base of the target sequence is altered by bisulfite treatment, thereby being specific for a methylated target sequence.
- Methods using an amplification reaction can utilize a real-time detection amplification procedure.
- the method can utilize molecular beacon technology.
- methyl light Trinh BN, Long TI, Laird PW. 25(4):456-62 (2001 ), incorporated herein in its entirety by reference
- Methyl Heavy Methyl Heavy
- SNuPE single nucleotide primer extension
- methyl light, methyl heavy, and array-based methylation analysis can be ⁇ erformed. bv usine bisulfite treated DNA that is then PCR-amplified, against microarrays of oligonucleotide target sequences with the various forms corresponding to unmethylated and methylated DNA.
- the degree of methylation in the DNA associated with the gene or genes or regulatory regions thereof may be measured by fluorescent in situ hybridization (FISH) by means of probes which identify and differentiate between genomic DNAs, which exhibit different degrees of DNA methylation.
- FISH fluorescent in situ hybridization
- the biological sample will typically be any which contains sufficient whole cells or nuclei to perform short term culture.
- the sample will be a tissue sample that contains 10 to 10,000, or, for example, 100 to 10,000, whole somatic cells.
- methylation-sensitive restriction endonucleases can. be used to detect methylated CpG dinucleotide motifs. Such endonucleases may either preferentially cleave methylated recognition sites relative to non-methylated recognition sites or preferentially cleave non-methylated relative to methylated recognition sites. Examples of the former are Ace III, Ban I, BstN I, Msp I, and Xma I. Examples of the latter are Ace II, Ava I, BssH II, BstU I, Hpa II, and Not I. Alternatively, chemical reagents can be used which selectively modify either the methylated or non-methylated form of CpG dinucleotide motifs.
- hypermethylation of the target gene is detected by detecting decreased expression of the gene.
- Expression of a gene can be assessed using any means known in the art. Typically expression is assessed and compared in test samples and control samples which may be normal, non-malignant cells. The test samples may contain cancer cells or pre-cancer cells or nucleic acids from them. Methods employing hybridization to nucleic acid probes can be employed for measuring specific mRNAs. Such methods include using nucleic acid probe arrays (microarray technology), in situ hybridization, and using Northern blots. Messenger RNA can also be assessed using amplification techniques., such as RT-PCR.
- Sequencing-based methods are an alternative; these methods started with the use of expressed sequence tags (ESTs), and now include methods based on short tags, such as : expression (S AGE) and massively parallel signature sequencing (MPSS).
- ESTs expressed sequence tags
- MPSS massively parallel signature sequencing
- Differential display techniques provide yet another means of analyzing gene expression; this family of techniques is based on random amplification of cDNA fragments generated by restriction digestion, and bands that differ between two tissues identify cDNAs of interest.
- specific proteins can be assessed using any convenient method including immunoassays and immuno-cytochemistry but are not limited to that. Most such methods will employ antibodies which are specific for the particular protein or protein fragments.
- the sequences of the mRNA (cDNA) and proteins of the target genes of the present invention are known in the art and publicly available.
- selective hybridization or “selectively hybridize” refers to hybridization under moderately stringent or highly stringent physiological conditions, which can distinguish related nucleotide sequences from unrelated nucleotide sequences.
- the conditions used to achieve a particular level of stringency will vary, depending on the nature of the nucleic acids being hybridized. For example, the length, degree of complementarity, nucleotide sequence composition (for example, relative GC: AT content), and nucleic acid type, i.e., whether the oligonucleotide or the target nucleic acid sequence is DNA or RNA, can be considered in selecting hybridization conditions. An additional consideration is whether one of the nucleic acids is immobilized, for example, on a filter. Methods for selecting appropriate stringency conditions can be determined empirically or estimated using various formulas, and are well known in the art (see, for example, Sambrook et al., supra, 1989).
- An example of progressively higher stringency conditions is as follows: 2X SSC/0.1% SDS at about room temperature (hybridization conditions); 0.2X SSC/0.1% SDS at about room temperature (low stringency conditions); 0.2X SSC/0.1% SDS at about 42 0 C (moderate stringency conditions); and 0.1X SSC at about 68°C (high stringency conditions). Washing can be carried out using only one of these conditions, for example, high stringency conditions, or each of the conditions can be used, for example, for 10 to 15 minutes each, in the order listed above, repeating any or all of the steps listed.
- nucleic acid molecule is used broadly herein to mean a sequence of deoxyribonucleotides or ribonucleotides that are linked together by a phosphodiester bond.
- leic acid molecule is meant to include DNA and RNA, which can be single stranded or double stranded, as well as DNA/RNA hybrids.
- nucleic acid molecule includes naturally occurring nucleic acid molecules, which can be isolated from a cell, for example, a particular gene of interest, as well as synthetic molecules, which can be prepared, for example, by methods of chemical synthesis or by en2ymatic methods such as by the polymerase chain reaction (PCR), and, in various embodiments, can contain nucleotide analogs or a backbone bond other than a phosphodiester bond.
- PCR polymerase chain reaction
- polynucleotide and “oligonucleotide” also are used herein to refer to nucleic acid molecules. Although no specific distinction from each other or from “nucleic acid molecule” is intended by the use of these terms, the term “polynucleotide” is used generally in reference to a nucleic acid molecule that encodes a polypeptide, or a peptide portion thereof, whereas the term “oligonucleotide” is used generally in reference to a nucleotide sequence useful as a probe, a PCR primer, an antisense molecule, or the like. Of course, it will be recognized that an "oligonucleotide” also can encode a peptide. As such, the different terms are used primarily for convenience of discussion.
- a polynucleotide or oligonucleotide comprising naturally occurring nucleotides and phosphodiester bonds can be chemically synthesized or can be produced using recombinant DNA methods, using an appropriate polynucleotide as a template.
- a polynucleotide comprising nucleotide analogs or covalent bonds other than phosphodiester bonds generally will be chemically synthesized, although an enzyme such as T7 polymerase can incorporate certain types of nucleotide analogs into a polynucleotide and, therefore, can be used to produce such a polynucleotide recombinantly from an appropriate template.
- General embodiments of the present invention relate to methods and kits used for diagnosing, or evaluating a subject having or at risk of developing head and neck cancer by determining the methylation state of a gene or the regulatory region of at least one gene in a nucleic acid sample from the subject, and wherein at least one gene or regulatory region is hypermethylated as compared to the same region in a corresponding normal cell.
- a further embodiment of the present invention includes the use of a plurality of ' regions of the genes in the methods described herein.
- the regulatory regions in each of the genes may be identified as hypermethylated as compared to the same region in a corresponding normal cell.
- kits contemplated are based on chemical changes (promoter hypermethylation) that are preferentially detected in the salivary rinse and serum DNA of patients with head and neck cancer and individuals at risk for head and neck cancer.
- references describing methods of detecting a cellular proliferative disorder, such as HNSCC, by determining the methylation state of at least one gene or regulatory region of a gene include U.S. Patent Nos: 7,214,485; 7,153,657; 7,153,653; 6,893,820; 6,811,982; and 6,617,434.
- One embodiment of the present methods includes a set of selected gene promoters that are preferentially chemically altered (methylated) in salivary rinses and serum DNA in association with head and neck cancer risk.
- Embodiments of the methods include current means of detecting promoter hypermethylation, quantititative methylation specific PCR, as well as other means of determining gene specific promoter hypermethylation.
- the current gene panel may be modified in an ongoing fashion to include other genes that aid in detection of risk for head and neck cancer.
- One embodiment includes methods where the hypermethylation is at a CpG dinucleotide motif in the at least one gene or regulatory region which may be a promoter.
- the methods for detecting hypermethylation include but are not limited to: (a) detecting decreased expression of the gene; (b) detecting decreased mRNA of the gene; (c) detecting decreased protein encoded by the gene; and (d) detected by contacting at least a portion of the gene with a methylation-sensitive restriction endonuclease, the endonuclease preferentially cleaving non-methylated recognition sites relative to methylated recognition sites wherebv r.leava ⁇ e of the portion of the gene indicates non-methylation of the portion of the gene provided that the gene comprises a recognition site for the methylation-sensitive restriction endonuclease.
- the decreased expression of the gene may be detected by reverse transcription-polymerase chain reaction (RT-PCR) for example.
- RT-PCR reverse transcription-polymerase chain reaction
- a method for detecting hypermethylation is provided by contacting at least a portion of the gene of the cell with a chemical reagent that selectively modifies a non-methylated cytosine residue relative to a methylated cytosine residue, or selectively modifies a methylated cytosine residue relative to a non-methylated cytosine residue; and detecting a product generated by the contacting step. Additionally this method may include the step of hybridization with at least one probe that hybridizes to a sequence comprising a modified non-methylated CpG dinucleotide motif but not to a sequence comprising an unmodified methylated CpG dinucleotide.
- the method may further include the step of amplification with at least one primer that hybridizes to a sequence comprising a modified non-methylated CpG dinucleotide motif but not to a sequence comprising an unmodified methylated CpG dinucleotide motif thereby forming amplification products.
- the amplification with at least one primer that hybridizes to a sequence comprising an unmodified methylated CpG dinucleotide motif but not to a sequence comprising a modified non-methylated CpG dinucleotide motif thereby forming amplification products is also contemplated.
- An additional embodiment features the detection of hypermethylation by contacting at least a portion of the gene of the cell with a chemical reagent that selectively modifies a non-methylated cytosine residue relative to a methylated cytosine residue, or selectively modifies a methylated cytosine residue relative to a non-methylated cytosine residue; and detecting a product generated by the contacting step. Additionally the product may be detected by a method selected from the group consisting of electrophoresis, hybridization, amplification, primer extension, sequencing, ligase chain reaction, chromatography, mass spectrometry, and combinations thereof.
- One embodiment of the present invention is based on the testing and identification of a unique profile of gene promoters that are effective markers for risk for head and neck cancer.
- the profiles comprise any of the specified genes alone, or in combination with each other or other non-listed or unknown yet to be discovered gene promoters.
- the gene promoter panels comprise from 2 to 25 genes or regulatory regions of genes.
- the panel may comprise, by way of example, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24 or 25 genes or regulatory regions of genes.
- Preferably the panel will include from 3 to 8 genes or regulatory regions.
- a combination of any of the following genes or the regulatory regions of the following genes is included in the present invention: DCC, DAPK, TIMP3, ESR, CCNAl, CCND2, MINTl, MINT31, CDHl, AIMl 5 MGMT, pl6, PGP9.5, RARB, HICl, RASSFlA, CALCA, TGFBR2, S100A2, RIZl, RBM6, KIFl, EDNRB.
- Another embodiment discloses a panel of promoter hypermethylation markers that have created an improved ability to detect epigenetic changes associated with HNSCC in salivary rinses and serum from patients with HNSCC. Further this panel of promoter hypermethylation markers can be used to anticipate the diagnosis of tumor recurrence by detecting the epigenetic changes associated with HNSCC.
- the invention provides a kit for detecting a cellular proliferative disorder in a subject comprising one or more reagents for detecting the methylation state of at least one gene or regulatory region associated with the following genes: DCC, DAPK, TIMP3, ESR, CCNAl, CCND2, MINTl, MINT31, CDHl, AIMl, MGMT, pl6, PGP9.5, RARB, HICl, RASSFlA, CALCA, TGFBR2, S100A2, RIZl, RBM6, KIFl, and EDNRB.
- Embodiments of the invention include the methods and kits which use both serum and saliva as well as either of them alone.
- Another embodiment that uses a saliva sample may selectively include include at least one gene selected from CCNAl, TIMP3, DCC, DAPK, MGMT, MINT31, pl6 5 PGP9.5, 1, ESR, CCND2 and a combination thereof in the methods and kits. Additional embodiments include panels of at least one of these genes either in combination together, or in combination with other non-listed genes.
- Another embodiment that uses a serum sample may selectively include include at least one gene selected from HICl, PGP9.5, CDHl, CCND2, TIMP3, TGFBR2, AIMl, ESR, CCNAl, DCC, MINT31, pi 6, RARB and a combination thereof in the methods and kits. Additional embodiments include panels of at least one of these genes either in combination together, or in combination with other non-listed genes.
- the method includes comparing an expression analysis of a cell treated with an agent that reduces methylation to an expression analysis of a control cell not treated with the agent, wherein an increase in expression of a gene is indicative of a gene activated by demethylation.
- the cell is from a minimally transformed cell line.
- the method may further include an expression analysis of a tissue sample and a tumor sample from the same tissue of origin as the treated cell, wherein an increase in expression of a gene in a tumor sample as compared to a normal sample is correlated to the genes activated by demethylation in the treated cell.
- the method may also include sequence analysis to identify CpG dinucletide motifs in the regulatory region, or particularly the promoter of identified genes. Determination of the methylation status of the identified genes in tumor and corresponding normal tissue samples may also be included.
- An additional embodiment of the present invention includes a method of determining the prognosis of a subject having a head and neck cancer by determining the methylation state of a gene or the regulatory region of at least one gene, wherein the gene or the regulatory region is hypermethylated as compared to the same region in a corresponding normal cell; using at least one gene or regulatory region of a gene selected from DCC, DAPK, TIMP3, ESR, CCNAl, CCND2, MINTl, MINT31, CDHl, AIMl, MGMT, pi 6, PGP9.5, RARB, HICl, RASSFlA, CALCA, TGFBR2, S100A2, RIZl, RBM6, KIFl, and EDNRB and a combination thereof.
- One embodiment of the present invention includes a method for determining whether a subject is responsive to a particular therapeutic regimen by determining the methylation state of a gene or the regulatory region of at least one gene, in a nucleic acid sample from the subject, wherein the at least one gene or regulatory region is hypermethylated as compared to the same region in a corresponding normal cell; using at least one gene or regulatory region thereof selected from the group consisting of DCC, DAPK, TIMP3, ESR, CCNAl, CCND2.
- MINTl MINT31, CDHl 3 AIMl, MGMT, pl6, PGP9.5, RARB, HICl, RASSFlA, CALCA, TGFBR2, S100A2, RIZl, RBM6, KIFl, EDNRB and a combination thereof.
- the determination of whether the subject is responsive to a particular therapeutic regiment is based on determining if hypermethylation of the gene or region above occurs compared to the same region in a corresponding normal cell this may be indicative of a subject who is not responding to the current therapeutic regimen.
- the method includes determining the methylation state of at least one regulatory region of a gene in a nucleic acid sample from the subject, wherein hypermethylation as compared to a corresponding normal cell in the subject or a subject not having the disorder, is indicative of a poor prognosis.
- the therapeutic regimen contemplated may include administration of a chemotherapeutic agent selected from methotrexate, cisplatin/carboplatin, canbusil, dactinomicin, taxol (paclitaxol), a vinca alkaloid, a mitomycin-type antibiotic, a bleomycin- type antibiotic, antifolate, colchicine, demecoline, etoposide, taxane, anthracycline antibiotic, doxorubicin, daunorubicin, carminomycin, epirubicin, idarubicin, mithoxanthrone, 4- dimethoxy-daunomycin, 11-deoxy daunorubicin, 13-deoxydaunorubicin, adriamycin-14- benzoate, adriamycin-14-octanoate, adriamycin-14-naphthaleneacetate, amsacrine, carmustine,
- the therapeutic treatment includes administration of a demethylating agent.
- a demethylating agent include 5-azacytidine, 5-aza-2- ilarine.
- An embodiment of the present invention includes a kit, for practicing any of the methods described above, including an agent that provides a determination of the methylation state of a gene or the regulatory region of at least one gene, and a panel of one or more genes selected from DCC, DAPK, TIMP3, ESR, CCNAl, CCND2. MINTl.
- MINT31 CDHl, AIMl, MGMT, pl6, PGP9.5, RARB, HICl, RASSFlA, CALCA, TGFBR2, S100A2, RIZl, RBM6, KIFl, EDNRB and a combination thereof.
- An additional embodiment features a kit, for practicing any of the methods described above, including an agent that provides a determination of the methylation state of a gene or the regulatory region of at least one gene; and a panel of two or more genes selected from DCC, DAPK, TIMP3, ESR, CCNAl, CCND2.
- Example 1 discloses identification of an expanded panel of promoter hypermethylation markers which result in an improved ability to detect epigenetic changes associated with HNSCC in salivary rinses and serum from patients with HNSCC.
- the results of these experiments in Example 1 show differential promoter hypermethylation in HNSCC patients compared with normal individuals in these body fluid compartments.
- the Example shows evaluation of the aberrant promoter hypermethylation of candidate tumor suppressor genes as a means to detect epigenetic alterations specific to solid tumors, including HNSCC.
- the Example shows promoter regions identified via a candidate gene and discovery approach, and evaluated the ability of an expanded panel of CpG-rich promoters known to be differentially hypermethylated in HNSCC in detection of promoter w ⁇ TM , ⁇ + ⁇ ,,,icard + ,• « town ; consult serum and salivary rinses associated with HNSCC.
- Q-MSP quantitative methylation-specific PCR
- Marker panels in salivary rinses showed improved detection when compared with single markers, including a panel with 35% sensitivity and 90% specificity and a panel with 85% sensitivity and 30% specificity.
- a similar pattern was noted in serum panels, including a panel with 84.5% specificity with 50.0% sensitivity and a panel with sensitivity of 81.0% with specificity of 43.5%. It was also observed that serum and salivary rinse compartments showed a differential pattern of methylation in normal subjects that influenced the utility of individual markers.
- Samples from 211 HNSCC patients were obtained from patients presenting a previously untreated squamous cell carcinoma from the oral cavity, larynx, or pharynx. Patients were evaluated and enrolled in appropriate protocols in the Department of Otolaryngology-Head and Neck Surgery at Johns Hopkins Medical Institutions (Baltimore, MD) using appropriate informed consent obtained after institutional review board approval. Tumor, salivary rinse, and serum samples from these patients were collected.
- the presence of methylated signal in exfoliated upper aerodigestive cells obtained during a screening study in a control population was assessed.
- the tissue collected using this technique includes exfoliated epithelial cells from the upper aerodigestive tract, and an ⁇ d to include cells from deep epithelial layers in the oral cavity and oropharynx.
- This technique allows for a broad sampling of epithelial cells from multiple sites in the upper aerodigestive tract.
- Salivary rinses were obtained by brushing oral cavity and oropharyngeal surfaces with an exfoliating brush followed by rinse and gargle with 20 mL normal saline solution. Cellular material from the brushing was released into the saline rinse and centrifuged to obtain a cell pellet after supernatant was discarded.
- the control population consisted of subjects enrolled in a community screening study for head and neck cancer approved by the Johns Hopkins institutional review board. The experimental protocol was approved by the Johns Hopkins Medical Institutions Institutional Review Board and informed consent was obtained from all enrolled subjects. For the control population, a salivary rinse and blood sample were collected. All subjects were administered a confidential written survey of risk factors for upper aerodigestive tract malignancies, including alcohol and tobacco use as well as the presence of co-morbid illnesses. Smoking was defined as use of tobacco, chewable or smoked, for at least 1 year continuously. Heavy alcohol use was defined as intake of more than two alcoholic drinks per day.
- DNA obtained from tumor, salivary rinses, and serum samples was extracted by digestion with 50 ⁇ g/mL proteinase K (Boehringer) in the presence of 1% SDS at 48 ° C overnight followed by phenol/chloroform extraction and ethanol precipitation.
- DNA from tissue samples was subjected to bisulfite treatment as described previously (Herman et al., Proc Natl Acad Sci U S A 1996;93:9821-6). Briefly, 2 ⁇ g of genomic DNA were denatured in 0.2 mol/L NaOH for 20 min at 50 ° C. The denatured DNA was diluted in 500 ⁇ L of freshly prepared solution of 10 mmol/L hydroquinone and 3 mol/L sodium bisulfite and incubated for 3 h at 70 ° C. After incubation, the DNA sample was desalted through a column (Wizard DNA Clean-Up System, Promega), treated with 0.3 mol/L NaOH for 10 min at room temperature, and precipitated overnight with ethanol. The bisulfite-modified genomic DNA was resuspended in 120 ⁇ L H2O and stored at -80 ° C.
- the bisulfite-modified DNA was used as a template for fluorescence-based realtime PCR as described previously (Harden et al., Clin Cancer Res 2003;9:1370-5).
- primers and probes were designed to specifically amplify the bisulfite-converted DNA for the ACTB gene and all genes of interest (primers and probes sequences are available displayed in Figure 1).
- the ratios between the values of the gene of interest and the internal reference gene (ACTB), which was obtained by Taqman analysis and take into account the PCR efficiency, were used as a measure for representing the relative quantity of methylation in a particular sample (value for the gene of interest/value for the reference gene x 100).
- Fluorogenic PCRs were carried out in a reaction volume of 20 ⁇ L consisting of 600 nmol/L of each primer; 200 ⁇ mol/L of probe; 0.75 unit of platinum Taq polymerase (Invitrogen); 200 ⁇ mol/L of each dATP, dCTP, dGTP, and dTTP; 200 nmol/L of ROX Reference Dye (Invitrogen); 16.6 mmol/L ammonium sulfate; 67 mmol/L Trizma (Sigma); 6.7 mmol/L magnesium chloride; 10 mmol/L mercaptoethanol; and 0.1% DMSO. Three microliters of treated DNA solution were used in each real-time MSP reaction.
- Amplifications were carried out in 384-well ⁇ lates in a 7900 Sequence Detector System (Perkin-Elmer Applied cycling was initiated with a first denaturation step at 95 ° C for 2 min followed by 45 cycles of 95 ° C for 15 s and 60 ° C or 62 ° C for lmin.
- Leukocytes from a healthy individual were methylated in vitro with excess Sssl methyltransferase (New England Biolabs) to generate completely methylated DNA, and serial dilutions of this DNA were used for constructing the calibration curves on each plate. Each reaction was done in triplicate; the average of the triplicate was considered for analysis.
- Results for Q-MSP was analyzed considering the quantity of methylation (normalized by ACTB) as well as considering methylation as a binary event, in which any quantity of methylation in a sample would be considered as positive for methylation.
- Genes selected for this study came from three different sources: (a) genes with promoters that are reported as hypermethylated in HNSCC [DCC, pl6(INK4A), CDHl, MGMT, DAPK, RASSFlA, RARB, and RIZl]; also including two genome regions known to have a differentially methylated pattern in some tumors (MINTl and MINT31 ;); (b) genes with promoters that are reported as hypermethylated in other solid tumors (CCND2, CALCA, TGFBR2, HICl, S100A2, TIMP3, and ESR); and (c) gene discovery using expression microarray-based approach via unmasking of expression (CCNAl, PGP9.5, AIMl, and RBM6).
- a screening evaluation was performed by evaluating candidate genes by comparing tumor samples (cases) with salivary rinses or serum (from controls) in a t of both the patient and controls.
- a screening evaluation directed at the serum and salivary rinse compartments was performed by comparison between salivary rinses (case) from salivary rinses (control) and serum (case) from serum (control) in additional limited sets of HNSCC patients and controls. For this first step of interim analysis, a subset of samples (those with higher concentration of DNA) from the complete cohort was used.
- AUC area under the curve
- HNSCC patients were mainly males (75.5%) and Caucasians (78.1%), with ages ranging from 32 to 89 years (median, 57.8 years). Alcohol or tobacco consumption (current or past) was found in 71.3% and 81.7%, respectively.
- control population (subjects enrolled in a community screening study) was mainly males (59.6%) and Caucasians (78.6%), with ages ranging from 18 to 94 years (median, 61.0 years). Alcohol or tobacco consumption (current or past) was found in 79.8% and 61.8%, respectively.
- Distinct methylation patterns were noted as follows: (a) methylation was detected only in HNSCC but /HNT31, and RASSFlA; (b) a higher frequency and quantity of methylation was noted in HNSCC compared with controls with absent methylation in a subset of control samples: DCC, DAPK, CCNAl, TIMP3, MGMT, AIMl, ESR, MINTl, CDHl, RARB, PGP9.5, and HICl; (c) a higher frequency of methylation was noted in HNSCC compared with controls but in a similar quantity in both groups: CCND2; (d) a similar frequency of methylation was noted in both groups (tumor and salivary rinses); however, a quantitative difference between groups was noted: CALCA; and (e) methylation was noted in both HNSCC and controls at a similar frequency with no difference in methylation levels: RIZl 5 TGFBR2, S100A2, and RBM6. Examples of these patterns are shown on Figure
- TiMe 1 Comparison of ttpat!t €%fefldft detectfert on tumar DM (HMSCC ptltrts) awl saivary rhsa samples fc ⁇ tfrafe)
- OCC 135 135 ⁇ 0,0001 77.8 (69.8-84.5) 100 (97.8-100)
- RBH6 44 IS 0.022 97.7 (88.0-100) 22.2 (6.4-47.6)
- the genes that could distinguish the tumor samples ⁇ ples (control) using binary results (presence or absence of methylation) and AUC >0.60 and at least 90% specificity or sensitivity were selected to be tested on serum from the HNSCC patients.
- MINTl and RBM6 would fulfill these criteria, the levels of methylation observed in the previous analysis showed higher levels of methylation in control serum than in tumor DNA, so these two markers were excluded as candidates for the panel.
- CCNAl, DCC, TIMP3, MINT31, pl6, PGP9.5, AIMl, ESR, CCND2, CDHl, TGFBR2, and HICl were selected.
- TaWe 4 Comparison of hypermetftytatioft detection for single genes on serum samples (HNSCC patients) an serum samples: (controls)
- DAPK showed methylation in serum from normal control patients as well as in primary HNSCC, consistent with previous findings (Reddy et al., Cancer Res 2003;63:7694-8), but only had minimal methylation in salivary rinses from control subjects, allowing for use in a salivary rinse detection panel.
- Other markers showed this phenomenon of compartment-specific methylation in normal controls ( Figure 8), and this phenomenon made a significant effect in the determination of separately constructed detection panels depending on the body fluid or cellular compartment of interest for detection.
- promoter methylation was HNSCC specific and could not be detected in healthy controls in salivary rinse, mucosal cytobrush, or serum.
- An elevated frequency of promoter hypermethylation in HNSCC in a panel of gene promoters previously described as methylated in HNSCC as well other solid tumors was confirmed in this example.
- normal control tissue showed substantial rates of methylation in a subset of these promoters. This would suggest that prior studies simply missed the phenomenon of promoter methylation in tissues from subjects without a cancer diagnosis due to small sample size.
- this observation could be explained by the phenomenon of compartment-specific methylation as a normal physiologic state.
- RARB is hypermethylated in normal control salivary rinses at a similar frequency and magnitude when compared with primary HNSCC. Similar phenomena have been noted with other genes.
- promoter hypermethylation can be associated with age, race, or tobacco and alcohol exposure.
- genes such as HICl, TGFBR2, PGP9.5, MINTl, and CDHl showed an important variance on AUC results depending on those factors. These results reinforce the observation that genes that are able to discriminate cases from controls in salivary rinse assays were not significantly influenced by age, gender, and tobacco or alcohol consumption.
- the use of Q-MSP may have increased the sensitivity in detecting low quantity methylation even in a subset of healthy controls.
- the use of Q-MSP as a continuous variable did not show significant improvement compared with analysis as a binary variable.
- promoter hypermethylation for selected genes proved to be highly specific for HNSCC in primary tumors (e.g., pi 6 and MINT31; Table 1).
- promoter hypermethylation is not always detectable in salivary rinses or in the serum from HNSCC patients despite the presence of methylation in primary tumors (Table 2 A). This may be due to dilution effect of normal, nonmethylated genomes present in salivary rinses from normal mucosa.
- HIC 1 From the six selected genes based on preliminary analysis for use in detection in serum, only HIC 1 would be useful as a single gene marker, with a sensitivity of 31.4% and a specificity of 92.5%. Multiple gene combinations would add a much higher sensitivity (>65%) but would also be associated with a much lower specificity ( ⁇ 60%). However, other gene combinations could have sensitivity of 50.0% with a specificity of 84.5% (Table 4B). Prior reports using promoter hypermethylation to detect HNSCC in serum have shown an ⁇ 35% correlation of primary tumor methylation with matched serum for most studies, .
- the overall sensitivity in detecting the HNSCC in serum ranged from 31.4% to 87.2%, with the necessary caveat that improved sensitivity was obtained at the cost of decreased specificity.
- the relatively low sensitivity of serum-based detection using promoter hypermethylation has been described for other solid tumors as well.
- Pretreatment saliva DNA samples from HNSCC patients were evaluated for patterns of hypermethylation using Q-MSP.
- Target tumor suppressor gene promoter regions were selected based on the results of Example 1 describing a screening panel for HNSCC in high risk population subjects.
- the selected genes were: DAPK, DCC, MINT-31, TIMP-3, pl6, MGMT, CCNAl.
- Example 2 discloses a panel for detection of HNSCC evaluating the saliva of the patients from Example 1.
- the present example confirmed an elevated rate of promoter hypermethylation ins HSNCC patients' saliva using a panel of gene promoters previously described in Example 1.
- the present example also determined that detection of hypermethylation in pre-treatment saliva DNA may be predictive of local recurrence. This finding may improve or influence treatment and surveillance of HNSCC patients.
- Samples were obtained from HNSCC patients presenting with a previously untreated squamous cell carcinoma from the oral cavity, larynx or pharynx. Patients were evaluated and enrolled in a protocol in the Department of Otolaryngology-Head and Neck Surgery at Johns Hopkins Medical Institutions, Baltimore Salivary rinse samples from these patients were collected prior to any cancer treatment.
- Salivary rinses were obtained by brushing the oral cavity and oropharyngeal surfaces with an exfoliating brush followed by rinse and gargle with 20 ml normal saline solution. Cellular material from the brushing was released into the saline rinse, and centrifuged to obtain a cell pellet after supernatant was discarded.
- the experimental protocol was approved by the Johns Hopkins Medical Institutions Institutional Review Board and informed consent was obtained from all enrolled subjects.
- DNA obtained from tumor, salivary rinses and serum samples was extracted by digestion with 50 ⁇ g/ml proteinase K (Boehringer, Mannheim, Germany) in the presence of 1% SDS at 48°C overnight, followed by phenol/chloroform extraction and ethanol precipitation.
- DNA from tissue samples was subjected to bisulfite treatment, as described previously (Herman et al. PNAS 1996;93:9821-6). Briefly, 2 ⁇ g of genomic DNA was denatured in 0.2 M of NaOH for 20 minutes at 50°C. The denatured DNA was diluted in 500 ⁇ l of freshly prepared solution of 10 mmol/1 hydroquinone and 3M of sodium bisulfite and incubated for 3 hours at 70°C. After incubation, the DNA sample was desalted through a column (Wizard DNA Clean-Up System; Promega, Madison, WI), treated with 0.3 M of NaOH for 10 minutes at room temperature, and precipitated overnight with ethanol. The bisulfite-modified genomic DNA was resuspended in 120 ⁇ l of H 2 O and stored at -8O 0 C.
- the bisulfite-modified DNA was used as a template for fluorescence-based realtime polymerase chain reaction (PCR), as previously described Harden et al. Clin Cancer Res 2003;9:1370-5.
- primers and probes were designed to specifically amplify the bisulfite-converted DNA for the ACTB gene and all genes of interest (primers and probes sequences are shown in Figure 1).
- the ratios between the values of the gene of interest and the internal reference gene (ACTB) was obtained by Taqman analysis taking into account the PCR efficiency. Results were used as a measure of the relative quantity of methylation in a particular sample (value for the gene of interest/ value for the reference gene x 100).
- ⁇ i ⁇ TMTM* , - ⁇ ⁇ f ⁇ — a ctions were carried out in a reaction volume of 20 ⁇ l consisting of 600 nM of each primer; 200 ⁇ M of probe; 0.75 U of platinum Taq polymerase (Invitrogen); 200 ⁇ M of each dATP, dCTP, dGTP, and dTTP; 20OnM of ROX Dye reference (Invitrogen); 16.6 mmol/1 of ammonium sulfate; 67 mmol/1 of Trizma (Sigma); 6.7 mmol/1 of magnesium chloride; 10 mmol/1 of mercaptoethanol; and 0.1% dimethylsulfoxide.
- the survival analysis was done using the Kaplan-Meier method and the log-rank test.
- the disease free survival interval was defined as the interval between the date of the ie recurrence.
- the local control time was defined as the interval between the date of initial treatment and diagnosis of local recurrence.
- the Cox proportional risk model was used to calculate the multifactorial risk of local recurrence or death. Statistical significance was determined for two-sided p-values ⁇ 0.05.
- HNSCC patients were mainly males (82.3%), Caucasians (72.6%) with ages ranging from 32 to 84 years old (median, 58.3 years). Alcohol or tobacco consumption (current or past) were reported by 73.1% and 85.0%, respectively.
- Example 1 Aberrant promoter hypermethylation has been proposed as a means for detection of tumor specific cells in body fluids and exfoliated cells in solid tumors, including FINSCC.
- Example 1 a large sample size of both controls and FfNSCC patients was evaluated using an expanded panel of methylated promoter regions to determine the ability of Q-MSP to detect tumor specific promoter methylation in serum and salivary rinses.
- This example used salivary samples obtained from rinses and brushing healthy individuals as normal control tissue in order to obtain a broad representation of epithelial cells from the upper aerodigestive tract.
- results defined a panel for HNSCC detection with a high specificity but accompanied by a low sensitivity.
- experimental results enabled the definition of panels with high sensitivity and low specificity, which have potential use for surveillance after treatment or in a high risk population. It was decided to test the hypothesis that pretreatment salivary rinses may be associated with clinical outcome, and evaluate the utility of our panel in predicting local recurrence in HNSCC patients.
- the prognostic significance of hypermethylation in pretreatment salivary rinses is related to a higher concentration of methylated signal in exfoliated cells, independent of tumor stage or site, and therefore is unlikely to be related to tumor volume per se.
- Aggressive tumors with poorer prognosis may undergo increased rate of mechanical dissociation or sheddin ⁇ into salivarv rinses.
- Those tumors with a higher burden of epigenetic alteration aitly detected in salivary rinses, and may have a more aggressive behavior.
- HNSCC head and neck squamous cell carcinoma
- KIFlA and EDNRB demonstrated minimal (2% and 6.5%, respectively) methylation in normal salivary rinses, but were found to be highly methylated (95.6% and Drimary HNSCC.
- Methylation of the KIFlA and EDNRB gene promoters is a frequent event in HNSCC and these genes are not methylated in normal salivary rinses, demonstrating potential for these genes as biomarkers in detection strategies.
- Primers for EDNRB may include for RT-methylation specific PCR:
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| WO2016142295A1 (en) * | 2015-03-06 | 2016-09-15 | Vib Vzw | Markers for determining tumor hypoxia |
| US10060927B2 (en) | 2015-05-14 | 2018-08-28 | Expression Pathology, Inc. | SRM/MRM assay for the 6-O-methylguanine-DNA methyltransferase (MGMT) protein |
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| Title |
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| A. L. CARVALHO ET AL: "Evaluation of Promoter Hypermethylation Detection in Body Fluids as a Screening/Diagnosis Tool for Head and Neck Squamous Cell Carcinoma", CLINICAL CANCER RESEARCH, vol. 14, no. 1, 1 January 2008 (2008-01-01), pages 97-107, XP55003966, ISSN: 1078-0432, DOI: 10.1158/1078-0432.CCR-07-0722 * |
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